Borley William, Watson Brandon, Nizhnik Yakov P, Zeller Matthias, Rosokha Sergiy V
Department of Chemistry , Ball State University , Muncie , Indiana 47306 , United States.
Bioo Scientific , 7050 Burleson Road , Austin , Texas 78744 , United States.
J Phys Chem A. 2019 Aug 15;123(32):7113-7123. doi: 10.1021/acs.jpca.9b05549. Epub 2019 Aug 1.
Halogen bonding (XB) in complexes of diiodine with heteroaromatic -oxides was examined via a combination of UV-vis spectral and X-ray structural measurements, as well as computational analysis. While all of these associates were formed by analogous I···O bonds, they showed considerable variations of formation constants (5-1500 M) and intermolecular I···O bond length (2.3-3.2 Å). In the solid state, both atoms of I molecules were involved in XB, and the I···O separations were determined by the electron-donor abilities of -oxides and the strength of the bonding on the opposite side of the ditopic XB donor. The solution-phase formation constants of 1:1 complexes, , as well as magnitudes of the calculated interaction energies, Δ, increased with the shift of the values of the most negative potentials on the surfaces of -oxides' oxygen atoms, , toward more negative values. Yet, the interatomic contacts consistently deviated from the locations of . Instead, the structures of complexes were well suited for highest occupied molecular orbital/lowest unoccupied molecular orbital interactions of reactants. The values of , Δ, and the intermolecular distances in the calculated complexes were highly correlated with the charge-transfer interaction energies derived from the natural bond orbital analysis. This indicated that, besides electrostatic, molecular orbital interactions play a substantial role in XB between diiodine and -oxides. This conclusion was supported by the analysis of the complexes using the quantum theory of atoms in molecules, noncovalent interaction index, and density overlap region indicator, which showed that the covalent character of I···O bonding increases with the rise of interaction energies in the complexes.
通过紫外可见光谱、X射线结构测量以及计算分析相结合的方法,研究了二碘与杂芳族环氧化物配合物中的卤键(XB)。虽然所有这些缔合物都是通过类似的I···O键形成的,但它们的形成常数(5 - 1500 M)和分子间I···O键长(2.3 - 3.2 Å)存在显著差异。在固态中,I分子的两个原子都参与了卤键,I···O间距由环氧化物的给电子能力以及双位点卤键供体另一侧键合的强度决定。1:1配合物在溶液相的形成常数以及计算得到的相互作用能Δ的大小,随着环氧化物氧原子表面最负电位值向更负值的移动而增加。然而,原子间接触始终偏离了的位置。相反,配合物的结构非常适合反应物的最高占据分子轨道/最低未占据分子轨道相互作用。计算得到的配合物中的、Δ和分子间距离的值与自然键轨道分析得出的电荷转移相互作用能高度相关。这表明,除了静电作用外,分子轨道相互作用在二碘与环氧化物之间的卤键中也起着重要作用。使用分子中的原子量子理论、非共价相互作用指数和密度重叠区域指标对配合物进行分析,支持了这一结论,该分析表明I···O键合的共价性质随着配合物中相互作用能的增加而增强。